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Dissipation of standing slow magnetoacoustic waves in hot coronal loops

机译:冠状慢热环中持续的慢磁声波的耗散

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摘要

The damping of standing slow waves in hot (T > 6 MK) coronal loops of semicircular shape is revisited in both the linear and nonlinear regimes. Dissipation by thermal conduction, compressive viscosity, radiative cooling, and heating are examined for nonstratified and stratified loops. We find that for typical conditions of hot SUMER loops, thermal conduction increases the period of damped oscillations over the sound-crossing time, whereas the decay times are mostly shaped by compressive viscosity. Damping from optically thin radiation is negligible. We also find that thermal conduction alone results in slower damping of the density and velocity waves compared to the observations. Only when compressive viscosity is added do these waves damp out at the same rate as the observed rapidly decaying modes of hot SUMER loop oscillations, in contrast to most current work, which has pointed to thermal conduction as the dominant mechanism. We compare the linear predictions with numerical hydrodynamic calculations. Under the effects of gravity, nonlinear viscous dissipation leads to a reduction of the decay time compared to the homogeneous case. In contrast, the linear results predict that the damping rates are barely affected by gravity.
机译:在线性和非线性两种情况下都重新讨论了半圆形热(T> 6 MK)日冕环中驻波的衰减。对于非分层和分层回路,研究了通过热传导,压缩粘度,辐射冷却和加热引起的耗散。我们发现,对于热SUMER回路的典型条件,热传导会在整个声音传播时间内增加阻尼振荡的周期,而衰减时间主要取决于压缩粘度。光学上稀薄的辐射的阻尼可以忽略不计。我们还发现,与观测值相比,仅热传导会导致密度波和速度波的阻尼减慢。与大多数当前的研究相反,大多数研究表明热传导是主要机制,只有添加抗压粘度后,这些波才以与观察到的SUMER热环路振荡的快速衰减模式相同的速率衰减。我们将线性预测与数值流体动力学计算进行比较。与均匀情况相比,在重力作用下,非线性粘性耗散导致了衰减时间的减少。相反,线性结果表明阻尼率几乎不受重力影响。

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